tap_netif.c 22 KB

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  1. /*
  2. * TAP-Win32 -- A kernel driver to provide virtual tap device functionality
  3. * on Windows. Originally derived from the CIPE-Win32
  4. * project by Damion K. Wilson, with extensive modifications by
  5. * James Yonan.
  6. *
  7. * All source code which derives from the CIPE-Win32 project is
  8. * Copyright (C) Damion K. Wilson, 2003, and is released under the
  9. * GPL version 2 (see below).
  10. *
  11. * All other source code is Copyright (C) James Yonan, 2003-2004,
  12. * and is released under the GPL version 2 (see below).
  13. *
  14. * This program is free software; you can redistribute it and/or modify
  15. * it under the terms of the GNU General Public License as published by
  16. * the Free Software Foundation; either version 2 of the License, or
  17. * (at your option) any later version.
  18. *
  19. * This program is distributed in the hope that it will be useful,
  20. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  21. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  22. * GNU General Public License for more details.
  23. *
  24. * You should have received a copy of the GNU General Public License
  25. * along with this program (see the file COPYING included with this
  26. * distribution); if not, see <http://www.gnu.org/licenses/>.
  27. */
  28. #include <stdio.h>
  29. #include <windows.h>
  30. #include <winioctl.h>
  31. #include <rtthread.h>
  32. #include <netif/ethernetif.h>
  33. #define MAX_ADDR_LEN 6
  34. #define TAP_IFNAME "RT-net"
  35. //=============
  36. // TAP IOCTLs
  37. //=============
  38. #define TAP_CONTROL_CODE(request,method) \
  39. CTL_CODE (FILE_DEVICE_UNKNOWN, request, method, FILE_ANY_ACCESS)
  40. #define TAP_IOCTL_GET_MAC TAP_CONTROL_CODE (1, METHOD_BUFFERED)
  41. #define TAP_IOCTL_GET_VERSION TAP_CONTROL_CODE (2, METHOD_BUFFERED)
  42. #define TAP_IOCTL_GET_MTU TAP_CONTROL_CODE (3, METHOD_BUFFERED)
  43. #define TAP_IOCTL_GET_INFO TAP_CONTROL_CODE (4, METHOD_BUFFERED)
  44. #define TAP_IOCTL_CONFIG_POINT_TO_POINT TAP_CONTROL_CODE (5, METHOD_BUFFERED)
  45. #define TAP_IOCTL_SET_MEDIA_STATUS TAP_CONTROL_CODE (6, METHOD_BUFFERED)
  46. #define TAP_IOCTL_CONFIG_DHCP_MASQ TAP_CONTROL_CODE (7, METHOD_BUFFERED)
  47. #define TAP_IOCTL_GET_LOG_LINE TAP_CONTROL_CODE (8, METHOD_BUFFERED)
  48. #define TAP_IOCTL_CONFIG_DHCP_SET_OPT TAP_CONTROL_CODE (9, METHOD_BUFFERED)
  49. //=================
  50. // Registry keys
  51. //=================
  52. #define ADAPTER_KEY "SYSTEM\\CurrentControlSet\\Control\\Class\\{4D36E972-E325-11CE-BFC1-08002BE10318}"
  53. #define NETWORK_CONNECTIONS_KEY "SYSTEM\\CurrentControlSet\\Control\\Network\\{4D36E972-E325-11CE-BFC1-08002BE10318}"
  54. //======================
  55. // Filesystem prefixes
  56. //======================
  57. #define USERMODEDEVICEDIR "\\\\.\\Global\\"
  58. #define TAPSUFFIX ".tap"
  59. //======================
  60. // Compile time configuration
  61. //======================
  62. //#define DEBUG_TAP_WIN32
  63. #define TUN_ASYNCHRONOUS_WRITES 1
  64. #define TUN_BUFFER_SIZE 1560
  65. #define TUN_MAX_BUFFER_COUNT 32
  66. /*
  67. * The data member "buffer" must be the first element in the tun_buffer
  68. * structure. See the function, tap_win32_free_buffer.
  69. */
  70. typedef struct tun_buffer_s {
  71. unsigned char buffer [TUN_BUFFER_SIZE];
  72. unsigned long read_size;
  73. struct tun_buffer_s* next;
  74. } tun_buffer_t;
  75. typedef struct tap_win32_overlapped {
  76. HANDLE handle;
  77. HANDLE read_event;
  78. HANDLE write_event;
  79. HANDLE output_queue_semaphore;
  80. HANDLE free_list_semaphore;
  81. HANDLE tap_semaphore;
  82. CRITICAL_SECTION output_queue_cs;
  83. CRITICAL_SECTION free_list_cs;
  84. OVERLAPPED read_overlapped;
  85. OVERLAPPED write_overlapped;
  86. tun_buffer_t buffers[TUN_MAX_BUFFER_COUNT];
  87. tun_buffer_t* free_list;
  88. tun_buffer_t* output_queue_front;
  89. tun_buffer_t* output_queue_back;
  90. } tap_win32_overlapped_t;
  91. static tap_win32_overlapped_t tap_overlapped;
  92. /************************************************************************/
  93. /* RT-Thread Network Interface */
  94. /************************************************************************/
  95. struct tap_netif
  96. {
  97. /* inherit from ethernet device */
  98. struct eth_device parent;
  99. tap_win32_overlapped_t *handle;
  100. /* interface address info. */
  101. rt_uint8_t dev_addr[MAX_ADDR_LEN]; /* hw address */
  102. };
  103. #define NETIF_DEVICE(netif) ((struct tap_netif*)(netif))
  104. #define NETIF_TAP(netif) (NETIF_DEVICE(netif)->handle)
  105. static struct tap_netif tap_netif_device;
  106. static struct rt_semaphore sem_lock;
  107. static tun_buffer_t* get_buffer_from_free_list(tap_win32_overlapped_t* const overlapped)
  108. {
  109. tun_buffer_t* buffer = NULL;
  110. WaitForSingleObject(overlapped->free_list_semaphore, INFINITE);
  111. EnterCriticalSection(&overlapped->free_list_cs);
  112. buffer = overlapped->free_list;
  113. overlapped->free_list = buffer->next;
  114. LeaveCriticalSection(&overlapped->free_list_cs);
  115. buffer->next = NULL;
  116. return buffer;
  117. }
  118. static void put_buffer_on_free_list(tap_win32_overlapped_t* const overlapped, tun_buffer_t* const buffer)
  119. {
  120. EnterCriticalSection(&overlapped->free_list_cs);
  121. buffer->next = overlapped->free_list;
  122. overlapped->free_list = buffer;
  123. LeaveCriticalSection(&overlapped->free_list_cs);
  124. ReleaseSemaphore(overlapped->free_list_semaphore, 1, NULL);
  125. }
  126. static tun_buffer_t* get_buffer_from_output_queue(tap_win32_overlapped_t* const overlapped, const int block)
  127. {
  128. tun_buffer_t* buffer = NULL;
  129. DWORD result, timeout = block ? INFINITE : 0L;
  130. // Non-blocking call
  131. result = WaitForSingleObject(overlapped->output_queue_semaphore, timeout);
  132. switch (result)
  133. {
  134. // The semaphore object was signaled.
  135. case WAIT_OBJECT_0:
  136. EnterCriticalSection(&overlapped->output_queue_cs);
  137. buffer = overlapped->output_queue_front;
  138. overlapped->output_queue_front = buffer->next;
  139. if(overlapped->output_queue_front == NULL) {
  140. overlapped->output_queue_back = NULL;
  141. }
  142. LeaveCriticalSection(&overlapped->output_queue_cs);
  143. break;
  144. // Semaphore was nonsignaled, so a time-out occurred.
  145. case WAIT_TIMEOUT:
  146. // Cannot open another window.
  147. break;
  148. }
  149. return buffer;
  150. }
  151. static tun_buffer_t* get_buffer_from_output_queue_immediate (tap_win32_overlapped_t* const overlapped)
  152. {
  153. return get_buffer_from_output_queue(overlapped, 0);
  154. }
  155. static void put_buffer_on_output_queue(tap_win32_overlapped_t* const overlapped, tun_buffer_t* const buffer)
  156. {
  157. EnterCriticalSection(&overlapped->output_queue_cs);
  158. if(overlapped->output_queue_front == NULL && overlapped->output_queue_back == NULL) {
  159. overlapped->output_queue_front = overlapped->output_queue_back = buffer;
  160. } else {
  161. buffer->next = NULL;
  162. overlapped->output_queue_back->next = buffer;
  163. overlapped->output_queue_back = buffer;
  164. }
  165. LeaveCriticalSection(&overlapped->output_queue_cs);
  166. ReleaseSemaphore(overlapped->output_queue_semaphore, 1, NULL);
  167. }
  168. static int is_tap_win32_dev(const char *guid)
  169. {
  170. HKEY netcard_key;
  171. LONG status;
  172. DWORD len;
  173. int i = 0;
  174. status = RegOpenKeyEx(
  175. HKEY_LOCAL_MACHINE,
  176. ADAPTER_KEY,
  177. 0,
  178. KEY_READ,
  179. &netcard_key);
  180. if (status != ERROR_SUCCESS) {
  181. return FALSE;
  182. }
  183. for (;;) {
  184. char enum_name[256];
  185. char unit_string[256];
  186. HKEY unit_key;
  187. char component_id_string[] = "ComponentId";
  188. char component_id[256];
  189. char net_cfg_instance_id_string[] = "NetCfgInstanceId";
  190. char net_cfg_instance_id[256];
  191. DWORD data_type;
  192. len = sizeof (enum_name);
  193. status = RegEnumKeyEx(
  194. netcard_key,
  195. i,
  196. enum_name,
  197. &len,
  198. NULL,
  199. NULL,
  200. NULL,
  201. NULL);
  202. if (status == ERROR_NO_MORE_ITEMS)
  203. break;
  204. else if (status != ERROR_SUCCESS) {
  205. return FALSE;
  206. }
  207. rt_snprintf (unit_string, sizeof(unit_string), "%s\\%s",
  208. ADAPTER_KEY, enum_name);
  209. status = RegOpenKeyEx(
  210. HKEY_LOCAL_MACHINE,
  211. unit_string,
  212. 0,
  213. KEY_READ,
  214. &unit_key);
  215. if (status != ERROR_SUCCESS) {
  216. return FALSE;
  217. } else {
  218. len = sizeof (component_id);
  219. status = RegQueryValueEx(
  220. unit_key,
  221. component_id_string,
  222. NULL,
  223. &data_type,
  224. (LPBYTE)component_id,
  225. &len);
  226. if (!(status != ERROR_SUCCESS || data_type != REG_SZ)) {
  227. len = sizeof (net_cfg_instance_id);
  228. status = RegQueryValueEx(
  229. unit_key,
  230. net_cfg_instance_id_string,
  231. NULL,
  232. &data_type,
  233. (LPBYTE)net_cfg_instance_id,
  234. &len);
  235. if (status == ERROR_SUCCESS && data_type == REG_SZ) {
  236. if (/* !strcmp (component_id, TAP_COMPONENT_ID) &&*/
  237. !strcmp (net_cfg_instance_id, guid)) {
  238. RegCloseKey (unit_key);
  239. RegCloseKey (netcard_key);
  240. return TRUE;
  241. }
  242. }
  243. }
  244. RegCloseKey (unit_key);
  245. }
  246. ++i;
  247. }
  248. RegCloseKey (netcard_key);
  249. return FALSE;
  250. }
  251. static int get_device_guid(
  252. char *name,
  253. int name_size,
  254. char *actual_name,
  255. int actual_name_size)
  256. {
  257. LONG status;
  258. HKEY control_net_key;
  259. DWORD len;
  260. int i = 0;
  261. int stop = 0;
  262. status = RegOpenKeyEx(
  263. HKEY_LOCAL_MACHINE,
  264. NETWORK_CONNECTIONS_KEY,
  265. 0,
  266. KEY_READ,
  267. &control_net_key);
  268. if (status != ERROR_SUCCESS) {
  269. return -1;
  270. }
  271. while (!stop)
  272. {
  273. char enum_name[256];
  274. char connection_string[256];
  275. HKEY connection_key;
  276. char name_data[256];
  277. DWORD name_type;
  278. const char name_string[] = "Name";
  279. len = sizeof (enum_name);
  280. status = RegEnumKeyEx(
  281. control_net_key,
  282. i,
  283. enum_name,
  284. &len,
  285. NULL,
  286. NULL,
  287. NULL,
  288. NULL);
  289. if (status == ERROR_NO_MORE_ITEMS)
  290. break;
  291. else if (status != ERROR_SUCCESS) {
  292. return -1;
  293. }
  294. rt_snprintf(connection_string,
  295. sizeof(connection_string),
  296. "%s\\%s\\Connection",
  297. NETWORK_CONNECTIONS_KEY, enum_name);
  298. status = RegOpenKeyEx(
  299. HKEY_LOCAL_MACHINE,
  300. connection_string,
  301. 0,
  302. KEY_READ,
  303. &connection_key);
  304. if (status == ERROR_SUCCESS) {
  305. len = sizeof (name_data);
  306. status = RegQueryValueEx(
  307. connection_key,
  308. name_string,
  309. NULL,
  310. &name_type,
  311. (LPBYTE)name_data,
  312. &len);
  313. if (status != ERROR_SUCCESS || name_type != REG_SZ) {
  314. return -1;
  315. }
  316. else {
  317. if (is_tap_win32_dev(enum_name)) {
  318. rt_snprintf(name, name_size, "%s", enum_name);
  319. if (actual_name) {
  320. if (strcmp(actual_name, "") != 0) {
  321. if (strcmp(name_data, actual_name) != 0) {
  322. RegCloseKey (connection_key);
  323. ++i;
  324. continue;
  325. }
  326. }
  327. else {
  328. rt_snprintf(actual_name, actual_name_size, "%s", name_data);
  329. }
  330. }
  331. stop = 1;
  332. }
  333. }
  334. RegCloseKey (connection_key);
  335. }
  336. ++i;
  337. }
  338. RegCloseKey (control_net_key);
  339. if (stop == 0)
  340. return -1;
  341. return 0;
  342. }
  343. static int tap_win32_set_status(HANDLE handle, int status)
  344. {
  345. unsigned long len = 0;
  346. return DeviceIoControl(handle, TAP_IOCTL_SET_MEDIA_STATUS,
  347. &status, sizeof (status),
  348. &status, sizeof (status), &len, NULL);
  349. }
  350. static void tap_win32_overlapped_init(tap_win32_overlapped_t* const overlapped, const HANDLE handle)
  351. {
  352. overlapped->handle = handle;
  353. overlapped->read_event = CreateEvent(NULL, FALSE, FALSE, NULL);
  354. overlapped->write_event = CreateEvent(NULL, FALSE, FALSE, NULL);
  355. overlapped->read_overlapped.Offset = 0;
  356. overlapped->read_overlapped.OffsetHigh = 0;
  357. overlapped->read_overlapped.hEvent = overlapped->read_event;
  358. overlapped->write_overlapped.Offset = 0;
  359. overlapped->write_overlapped.OffsetHigh = 0;
  360. overlapped->write_overlapped.hEvent = overlapped->write_event;
  361. InitializeCriticalSection(&overlapped->output_queue_cs);
  362. InitializeCriticalSection(&overlapped->free_list_cs);
  363. overlapped->output_queue_semaphore = CreateSemaphore(
  364. NULL, // default security attributes
  365. 0, // initial count
  366. TUN_MAX_BUFFER_COUNT, // maximum count
  367. NULL); // unnamed semaphore
  368. if(!overlapped->output_queue_semaphore) {
  369. fprintf(stderr, "error creating output queue semaphore!\n");
  370. }
  371. overlapped->free_list_semaphore = CreateSemaphore(
  372. NULL, // default security attributes
  373. TUN_MAX_BUFFER_COUNT, // initial count
  374. TUN_MAX_BUFFER_COUNT, // maximum count
  375. NULL); // unnamed semaphore
  376. if(!overlapped->free_list_semaphore) {
  377. fprintf(stderr, "error creating free list semaphore!\n");
  378. }
  379. overlapped->free_list = overlapped->output_queue_front = overlapped->output_queue_back = NULL;
  380. {
  381. unsigned index;
  382. for(index = 0; index < TUN_MAX_BUFFER_COUNT; index++) {
  383. tun_buffer_t* element = &overlapped->buffers[index];
  384. element->next = overlapped->free_list;
  385. overlapped->free_list = element;
  386. }
  387. }
  388. /* To count buffers, initially no-signal. */
  389. overlapped->tap_semaphore = CreateSemaphore(NULL, 0, TUN_MAX_BUFFER_COUNT, NULL);
  390. if(!overlapped->tap_semaphore)
  391. fprintf(stderr, "error creating tap_semaphore.\n");
  392. }
  393. static int tap_win32_write(tap_win32_overlapped_t *overlapped,
  394. const void *buffer, unsigned long size)
  395. {
  396. unsigned long write_size;
  397. BOOL result;
  398. DWORD error;
  399. result = GetOverlappedResult( overlapped->handle, &overlapped->write_overlapped,
  400. &write_size, FALSE);
  401. if (!result && GetLastError() == ERROR_IO_INCOMPLETE)
  402. WaitForSingleObject(overlapped->write_event, INFINITE);
  403. result = WriteFile(overlapped->handle, buffer, size,
  404. &write_size, &overlapped->write_overlapped);
  405. if (!result) {
  406. switch (error = GetLastError())
  407. {
  408. case ERROR_IO_PENDING:
  409. #ifndef TUN_ASYNCHRONOUS_WRITES
  410. WaitForSingleObject(overlapped->write_event, INFINITE);
  411. #endif
  412. break;
  413. default:
  414. return -1;
  415. }
  416. }
  417. return write_size;
  418. }
  419. static void tap_win32_thread_entry(void* param)
  420. {
  421. tap_win32_overlapped_t *overlapped;
  422. unsigned long read_size;
  423. BOOL result;
  424. DWORD dwError;
  425. tun_buffer_t* buffer;
  426. struct eth_device* eth;
  427. eth = (struct eth_device*) &tap_netif_device;
  428. overlapped = NETIF_TAP(&tap_netif_device);
  429. buffer = get_buffer_from_free_list(overlapped);
  430. for (;;) {
  431. result = ReadFile(overlapped->handle,
  432. buffer->buffer,
  433. sizeof(buffer->buffer),
  434. &read_size,
  435. &overlapped->read_overlapped);
  436. if (!result) {
  437. dwError = GetLastError();
  438. if (dwError == ERROR_IO_PENDING) {
  439. WaitForSingleObject(overlapped->read_event, INFINITE);
  440. result = GetOverlappedResult( overlapped->handle, &overlapped->read_overlapped,
  441. &read_size, FALSE);
  442. if (!result) {
  443. #ifdef DEBUG_TAP_WIN32
  444. LPVOID lpBuffer;
  445. dwError = GetLastError();
  446. FormatMessage( FORMAT_MESSAGE_ALLOCATE_BUFFER | FORMAT_MESSAGE_FROM_SYSTEM,
  447. NULL, dwError, MAKELANGID(LANG_NEUTRAL, SUBLANG_DEFAULT),
  448. (LPTSTR) & lpBuffer, 0, NULL );
  449. fprintf(stderr, "Tap-Win32: Error GetOverlappedResult %d - %s\n", dwError, lpBuffer);
  450. LocalFree( lpBuffer );
  451. #endif
  452. }
  453. } else {
  454. #ifdef DEBUG_TAP_WIN32
  455. LPVOID lpBuffer;
  456. FormatMessage( FORMAT_MESSAGE_ALLOCATE_BUFFER | FORMAT_MESSAGE_FROM_SYSTEM,
  457. NULL, dwError, MAKELANGID(LANG_NEUTRAL, SUBLANG_DEFAULT),
  458. (LPTSTR) & lpBuffer, 0, NULL );
  459. fprintf(stderr, "Tap-Win32: Error ReadFile %d - %s\n", dwError, lpBuffer);
  460. LocalFree( lpBuffer );
  461. #endif
  462. }
  463. }
  464. if(read_size > 0) {
  465. // rt_kprintf("rx packet, length=%d\n", read_size);
  466. buffer->read_size = read_size;
  467. put_buffer_on_output_queue(overlapped, buffer);
  468. /* notify eth rx thread to receive packet */
  469. eth_device_ready(eth);
  470. buffer = get_buffer_from_free_list(overlapped);
  471. }
  472. }
  473. }
  474. static int tap_win32_read(tap_win32_overlapped_t *overlapped,
  475. rt_uint8_t **pbuf, int max_size)
  476. {
  477. int size = 0;
  478. tun_buffer_t* buffer = get_buffer_from_output_queue_immediate(overlapped);
  479. if(buffer != NULL) {
  480. *pbuf = buffer->buffer;
  481. size = (int)buffer->read_size;
  482. if(size > max_size) {
  483. size = max_size;
  484. }
  485. }
  486. return size;
  487. }
  488. static void tap_win32_free_buffer(tap_win32_overlapped_t *overlapped,
  489. rt_uint8_t *pbuf)
  490. {
  491. tun_buffer_t* buffer = (tun_buffer_t*)pbuf;
  492. put_buffer_on_free_list(overlapped, buffer);
  493. }
  494. static int tap_win32_open(tap_win32_overlapped_t **phandle,
  495. const char *preferred_name)
  496. {
  497. char device_path[256];
  498. char device_guid[0x100];
  499. int rc;
  500. HANDLE handle;
  501. BOOL bret;
  502. char name_buffer[0x100] = {0, };
  503. struct {
  504. unsigned long major;
  505. unsigned long minor;
  506. unsigned long debug;
  507. } version;
  508. DWORD version_len;
  509. if (preferred_name != NULL) {
  510. rt_snprintf(name_buffer, sizeof(name_buffer), "%s", preferred_name);
  511. }
  512. rc = get_device_guid(device_guid, sizeof(device_guid), name_buffer, sizeof(name_buffer));
  513. if (rc)
  514. return -1;
  515. rt_snprintf (device_path, sizeof(device_path), "%s%s%s",
  516. USERMODEDEVICEDIR,
  517. device_guid,
  518. TAPSUFFIX);
  519. handle = CreateFile (
  520. device_path,
  521. GENERIC_READ | GENERIC_WRITE,
  522. 0,
  523. 0,
  524. OPEN_EXISTING,
  525. FILE_ATTRIBUTE_SYSTEM | FILE_FLAG_OVERLAPPED,
  526. 0 );
  527. if (handle == INVALID_HANDLE_VALUE) {
  528. return -1;
  529. }
  530. bret = DeviceIoControl(handle, TAP_IOCTL_GET_VERSION,
  531. &version, sizeof (version),
  532. &version, sizeof (version), &version_len, NULL);
  533. if (bret == FALSE) {
  534. CloseHandle(handle);
  535. return -1;
  536. }
  537. if (!tap_win32_set_status(handle, TRUE)) {
  538. return -1;
  539. }
  540. tap_win32_overlapped_init(&tap_overlapped, handle);
  541. *phandle = &tap_overlapped;
  542. return 0;
  543. }
  544. static rt_err_t tap_netif_init(rt_device_t dev)
  545. {
  546. rt_thread_t tid;
  547. tap_win32_overlapped_t *handle;
  548. if (tap_win32_open(&handle, TAP_IFNAME) < 0) {
  549. printf("tap: Could not open '%s'\n", TAP_IFNAME);
  550. return -RT_ERROR;
  551. }
  552. tap_netif_device.handle = handle;
  553. /* create recv thread */
  554. tid = rt_thread_create("tap", tap_win32_thread_entry, RT_NULL,
  555. 2048, RT_THREAD_PRIORITY_MAX - 1, 10);
  556. if (tid != RT_NULL)
  557. {
  558. rt_thread_startup(tid);
  559. }
  560. rt_thread_sleep(RT_TICK_PER_SECOND);
  561. return RT_EOK;
  562. }
  563. static rt_err_t tap_netif_open(rt_device_t dev, rt_uint16_t oflag)
  564. {
  565. return RT_EOK;
  566. }
  567. static rt_err_t tap_netif_close(rt_device_t dev)
  568. {
  569. return RT_EOK;
  570. }
  571. static rt_size_t tap_netif_read(rt_device_t dev, rt_off_t pos, void* buffer, rt_size_t size)
  572. {
  573. rt_set_errno(-RT_ENOSYS);
  574. return 0;
  575. }
  576. static rt_size_t tap_netif_write (rt_device_t dev, rt_off_t pos, const void* buffer, rt_size_t size)
  577. {
  578. rt_set_errno(-RT_ENOSYS);
  579. return 0;
  580. }
  581. static rt_err_t tap_netif_control(rt_device_t dev, int cmd, void *args)
  582. {
  583. switch (cmd)
  584. {
  585. case NIOCTL_GADDR:
  586. /* get mac address */
  587. if (args) rt_memcpy(args, tap_netif_device.dev_addr, 6);
  588. else return -RT_ERROR;
  589. break;
  590. default :
  591. break;
  592. }
  593. return RT_EOK;
  594. }
  595. rt_err_t tap_netif_tx( rt_device_t dev, struct pbuf* p)
  596. {
  597. struct pbuf *q;
  598. char buffer[2048];
  599. int length;
  600. tap_win32_overlapped_t *handle;
  601. unsigned char* ptr;
  602. handle = NETIF_TAP(dev);
  603. /* lock EMAC device */
  604. rt_sem_take(&sem_lock, RT_WAITING_FOREVER);
  605. /* copy data to tx buffer */
  606. q = p;
  607. ptr = (rt_uint8_t*)buffer;
  608. while (q)
  609. {
  610. memcpy(ptr, q->payload, q->len);
  611. ptr += q->len;
  612. q = q->next;
  613. }
  614. length = p->tot_len;
  615. tap_win32_write(handle, buffer, length);
  616. /* unlock EMAC device */
  617. rt_sem_release(&sem_lock);
  618. return RT_EOK;
  619. }
  620. struct pbuf *tap_netif_rx(rt_device_t dev)
  621. {
  622. struct pbuf* p = RT_NULL;
  623. tap_win32_overlapped_t *handle;
  624. rt_uint8_t *buf;
  625. int max_size = 4096;
  626. int size;
  627. handle = NETIF_TAP(dev);
  628. size = tap_win32_read(handle, &buf, max_size);
  629. if (size > 0) {
  630. p = pbuf_alloc(PBUF_LINK, size, PBUF_RAM);
  631. pbuf_take(p, buf, size);
  632. tap_win32_free_buffer(handle, buf);
  633. }
  634. return p;
  635. }
  636. void tap_netif_hw_init(void)
  637. {
  638. rt_sem_init(&sem_lock, "eth_lock", 1, RT_IPC_FLAG_FIFO);
  639. tap_netif_device.dev_addr[0] = 0x00;
  640. tap_netif_device.dev_addr[1] = 0x60;
  641. tap_netif_device.dev_addr[2] = 0x37;
  642. /* set mac address: (only for test) */
  643. tap_netif_device.dev_addr[3] = 0x12;
  644. tap_netif_device.dev_addr[4] = 0x34;
  645. tap_netif_device.dev_addr[5] = 0x56;
  646. tap_netif_device.parent.parent.init = tap_netif_init;
  647. tap_netif_device.parent.parent.open = tap_netif_open;
  648. tap_netif_device.parent.parent.close = tap_netif_close;
  649. tap_netif_device.parent.parent.read = tap_netif_read;
  650. tap_netif_device.parent.parent.write = tap_netif_write;
  651. tap_netif_device.parent.parent.control = tap_netif_control;
  652. tap_netif_device.parent.parent.user_data= RT_NULL;
  653. tap_netif_device.parent.eth_rx = tap_netif_rx;
  654. tap_netif_device.parent.eth_tx = tap_netif_tx;
  655. eth_device_init(&(tap_netif_device.parent), "e0");
  656. }